A Stellar magnesium to silicon ratio in the atmosphere of an exoplanet.

Sanchez, Jorge A; Smith, Peter C B; Kanumalla, Krishna; Welbanks, Luis; Line, Michael R; Pelletier, Stefan; Desch, Steven; Young, Patrick et al. · Nat Commun · 2026

basic_science · Level V

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Abstract

The elemental compositions of exoplanets encode information about their formation environments and internal structures. While volatile ratios such as carbon-to-oxygen (C/O) are used to trace formation location, the rock-forming elements-magnesium (Mg), silicon (Si), and iron (Fe)-govern interior mineralogy and are commonly assumed to reflect the host star's abundances. Yet this assumption remains largely untested. Ultra-hot Jupiters, gas-giant exoplanets with dayside temperatures above 3000 K, provide rare access to refractory elements that remain gaseous. Here we present high-resolution thermal emission spectroscopy of the exoplanet WASP-189b ( <math xmlns="http://www.w3.org/1998/Math/MathML"> <msub><mrow><mi>T</mi></mrow> <mrow><mi>e</mi> <mi>q</mi></mrow> </msub> <mo>=</mo> <mn>335</mn> <msubsup><mrow><mn>4</mn></mrow> <mrow><mo>-</mo> <mn>34</mn></mrow> <mrow><mo>+</mo> <mn>27</mn></mrow> </msubsup> </math> K) obtained with the Immersion Grating Infrared Spectrometer (IGRINS) on Gemini South. We detect neutral iron (Fe I), magnesium (Mg I), silicon (Si I), water (H<sub>2</sub>O), carbon monoxide (CO), and hydroxyl (OH) at signal-to-noise ratios exceeding 4, and retrieve their elemental abundances. We show that the Mg/Si, Fe/Mg, and Si/Fe ratios are consistent with stellar values, while the refractory-to-volatile ratio is enhanced by roughly a factor of 2. These findings demonstrate that giant-planet atmospheres can preserve stellar-like rock-forming ratios, providing an empirical validation of the stellar-proxy assumption that underpins planetary composition and formation models across exoplanet systems.